Showing posts with label Claire M. Watts. Show all posts
Showing posts with label Claire M. Watts. Show all posts

Monday, June 30, 2014

Abstract-Terahertz compressive imaging with metamaterial spatial light modulators




Nature Photonics
 
 
doi:10.1038/nphoton.2014.139
Received
 
Accepted
 
Published online
 

Imaging at long wavelengths, for example at terahertz and millimetre-wave frequencies1, is a highly sought-after goal of researchers2, 3 because of the great potential for applications ranging from security screening4 and skin cancer detection5 to all-weather navigation6 and biodetection7. Here, we design, fabricate and demonstrate active metamaterials that function as real-time tunable, spectrally sensitive spatial masks for terahertz imaging with only a single-pixel detector. A modulation technique permits imaging with negative mask values, which is typically difficult to achieve with intensity-based components. We demonstrate compressive techniques allowing the acquisition of high-frame-rate, high-fidelity images. Our system is all solid-state with no moving parts, yields improved signal-to-noise ratios over standard raster-scanning techniques8, and uses a source orders of magnitude lower in power than conventional set-ups9. The demonstrated imaging system establishes a new path for terahertz imaging that is distinct from existing focal-plane-array-based cameras.

Wednesday, July 3, 2013

Exclusive comments from Dr. Willie Padilla and his team at Boston College




                                          

My Note: Recently, I reached out to Dr. Willie Padilla, at Boston College regarding the amazing work he is doing at BC relating to the development of metamaterials which can be employed in the terahertz regime. Dr. Padilla along with his research assistants, graduate students, Claire M. Watts, and David Shrekenhamer, recently announced that they had created a revolutionary single-pixel imaging technique which takes images that are guided through a coded aperture using a semiconductor to guide and direct the reproduced image of an object once THz waves have passed through it.  The BC team described this technique as depicted in the picture above in the following way: 
"A new method for single pixel terahertz (THz) imaging developed by Boston College researchers uses a set of instructions delivered by a laser beam to tune THz waves in order to produce new types of THz images. During the imaging method devised by the team, THz waves pass through an object (a); then they strike a silicon semiconductor (b) given specific instructions about how to sample the image; that data is passed along in order to digitally reconstruct an image (c) of the original object in just a few seconds. "( Image credit: Claire M. Watts, Boston College).

Here is what I wrote to Dr. Padilla, and his response, which Ms Watts,
and Mr. Shrekenhamer,




assisted with answers to the following questions:


Dear Dr. Padilla,

Thank you for agreeing to answer a few questions for me, and for readers of my blog, Terahertz Technology. As I know, I am a layman, and please excuse any of my questions which may be inartful, naïve or simply inane. 

 1. Are there names or other identifiers for the specific metamaterials which you have created for use in THz? If so, can you share that information, to give readers an idea of the number of different materials which you have developed for use with terahertz radiation?
Metamaterials can be scaled across almost the entire electromagnetic spectrum, from optical to microwave. What designates THz metamaterials is their size, the unit cell dimensions being on the order of tens of microns. Additionally, we choose to use materials that interact appropriately in the THz regime. There are many different metamaterials that have been designed to operate in THz, achieving many different electromagnetic responses.  For example, we have developed perfect absorbers, polarization sensitive and insensitive metamaterials, multi-frequency metamaterials, and spatially patterned metamaterials. We and other researchers have also created dynamic reconfigurable metamaterials whose material response can be controlled through a variety of mechanisms including electronic, optical, thermal, and mechanical.

2. Do the metamaterials you have developed rely upon the use of either photons or electrons for the generation of THz? Perhaps asked another way, would a device created with the use of your metamaterials function in the realm of electronics or photonics, (both or neither)?
THz metamaterials are typically fashioned within the photonic domain having demonstrated the ability to tailor the electromagnetic response in ways that are difficult and or expensive to find within natural occurring materials.

3. How close or how far away (months or years) are you from developing commercially viable uses for your single pixel THz camera, enhanced by your coded aperture semiconductor?
There are a lot of aspects about our imaging system that make it reasonably close to a commercially viable THz camera. First, the masks are reconfigurable and easily changeable. This allows us to image many different types of scenes. Second, the optics are easily transferable to a lens system, just like the one we see in conventional cameras. Third, and most importantly, we use a very low power source which makes our device easily adaptable to real world use.



4. Are there any plans to spin-off your work into a private or publically held entity to further develop and market your work?
We have no plans to spin off this work into the private sector. We have, however, applied for various patents related to our technology.

5. Are you involved in any way with compressive sensing, (cs) and does your single pixel camera rely in any way upon cs?
We are currently working on a few projects using compressive sensing. This particular implementation of the single pixel camera does not rely on CS, but rather uses Hadamard masks to improve SNR over conventional raster scan masks. However, we are now investigating several new designs that utilize CS methods in a single pixel camera architecture, similar to the one we are using in this project. In these single pixel cameras, the time of image acquisition is directly tied to the number of measurements you take. Therefore, by using CS methods to reduce the number of images, we can greatly reduce the image acquisition time. In the next iteration of this project we plan to implement these methods to increase our image frame rate.

6. Are you in contact with or do you do you work with any of the current commercial ventures engaged in the sale of THz products, Advantest, Coherent, Teraview, Advanced Photonix, Agilent, Genia, etc.?
No.

I want to thank Dr. Padilla, and his team for taking time to answer these questions, relating to the amazing work they are doing. Cheers to them!
(for a related link see:








Tuesday, June 25, 2013

Laser guided codes advance single pixel terahertz imaging



A new method for single pixel terahertz (THz) imaging developed by Boston College researchers uses a set of instructions delivered by a laser beam to tune THz waves in order to produce new types of THz images. During the imaging method devised by the team, THz waves pass through an object (a); then they strike a silicon semiconductor (b) given specific instructions about how to sample the image; that data is passed along in order to digitally reconstruct an image (c) of the original object in just a few seconds.
(Photo Credit: Claire M. Watts, Boston College)

http://www.sciencecodex.com/laser_guided_codes_advance_single_pixel_terahertz_imaging-114660
Efforts to overcome the challenges of mechanics, cost and image clarity are viewed as a crucial step in efforts to tame the THz gap since imaging and sensing at this frequency holds the potential for advances in areas as divergent as chemical fingerprinting, security imaging of hidden weapons, even real-time skin imaging to promote simple detection of skin cancer.
Central to this challenge is the development of a technology to create efficient masks – similar to the aperture of a camera -- capable of tuning THz radiation in order to produce clear images in just a few seconds.
Willie Padilla and graduate students David Shrekenhamer and Claire M. Watts report their new single pixel imaging method centers on what they describe as a "coded aperture multiplex technique" where a laser beam and electronic signals are used to send a set of instructions to a semiconductor so it can guide the reproduction of the image of an object after THz waves have passed through it.
A digital micro-mirror device encodes the laser beam with instructions that direct certain segments of the silicon mask to react and allow a selected sample of the THz waves to pass freely through, consistent with the image pattern. The combination of optical instructions and the reaction of the semiconductor create a THz spatial light modulator, the team reports. Functioning like the aperture of a conventional camera, the modulator then guides the digital reconstruction of the entire image based on a broad sampling of THz waves that have passed through the object.
The team's experiments found the method could produce masks of varying resolutions, ranging from 63 to 1023 pixels and acquire images at speeds up to .5 Hz, or about 2 seconds. The early findings "demonstrate the viability of obtaining real-time and high-fidelity THz images using an optically controlled SLM with a single pixel detector," the team concluded.
Padilla said the findings have spurred additional research by his lab into ways to further control THz waves, such as by using the intricate patterns of an engineered metamaterial to further manipulate terahertz waves to create images faster and with increased efficiency.